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Liquid flooded flow-focusing microfluidic device for in situ generation of monodisperse microbubbles

机译:用于单分散微泡原位生成的液流聚焦微流体装置

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Current microbubble-based ultrasound contrast agents are administered intravenously resulting in large losses of contrast agent, systemic distribution, and strict requirements for microbubble longevity and diameter size. Instead we propose in situ production of microbubbles directly within the vasculature to avoid these limitations. Flow-focusing microfluidic devices (FFMDs) are a promising technology for enabling in situ production as they can produce microbubbles with precisely controlled diameters in real-time. While the microfluidic chips are small, the addition of inlets and interconnects to supply the gas and liquid phase greatly increases the footprint of these devices preventing the miniaturization of FFMDs to sizes compatible with medium and small vessels. To overcome this challenge, we introduce a new method for supplying the liquid (shell) phase to a FFMD that eliminates bulky interconnects. A pressurized liquid-filled chamber is coupled to the liquid inlets of an FFMD, which we term a flooded FFMD. The microbubble diameter and production rate of flooded FFMDs were measured optically over a range of gas pressures and liquid flow rates. The smallest FFMD manufactured measured 14.5×2.8×2.3 mm. A minimum microbubble diameter of 8.1 ± 0.3μm was achieved at a production rate of 450,000 microbubbles/s (MB/s). This represents a significant improvement with respect to any previously reported result. The flooded design also simplifies parallelization and production rates of up to 670,000 MB/s were achieved using a parallelized version of the flooded FFMD. In addition, an intravascular ultrasound (IVUS) catheter was coupled to the flooded FFMD to produce an integrated ultrasound contrast imaging device. B-mode and IVUS images of microbubbles produced from a flooded FFMD in a gelatin phantom vessel were acquired to demonstrate the potential of in situ microbubble production and real-time imaging. Micro-bubble production rates of 222,000 MB/s from a flooded FFMD within the vessel lumen provided a 23 dB increase in B-mode contrast. Overall, the flooded design is a critical contribution towards the long-term goal of utilizing in situ produced microbubbles for contrast enhanced ultrasound imaging of, and drug delivery to, the vasculature.
机译:当前基于微泡的超声造影剂是静脉内给药,导致造影剂大量损失,全身分布以及对微泡寿命和直径大小的严格要求。相反,我们建议直接在脉管系统内原位产生微泡以避免这些限制。聚焦流体微流装置(FFMD)是一种有前途的技术,可实现原位生产,因为它们可以实时生产直径精确控制的微气泡。尽管微流控芯片很小,但增加了用于供应气相和液相的入口和互连装置,大大增加了这些设备的占地面积,从而阻止了FFMD的小型化,使其与中小型容器兼容。为了克服这一挑战,我们引入了一种将液相(壳)相供应至FFMD的新方法,从而消除了庞大的互连。加压液体填充室连接到FFMD的液体入口,我们称其为溢流FFMD。在一定范围的气体压力和液体流速下,光学测量满溢的FFMD的微气泡直径和生产率。最小的FFMD尺寸为14.5×2.8×2.3 mm。在450,000个微气泡/秒(MB / s)的生产率下,最小微气泡直径达到8.1±0.3μm。相对于任何先前报告的结果,这代表了重大改进。淹没式设计还简化了并行化,使用淹没式FFMD的并行化版本可实现高达670,000 MB / s的生产率。此外,将血管内超声(IVUS)导管耦合至充满的FFMD,以生产集成的超声对比成像设备。采集了由明胶幻影容器中充满的FFMD产生的微泡的B型和IVUS图像,以证明原位微泡产生和实时成像的潜力。容器管腔内充满的FFMD产生的222,000 MB / s的微气泡生产率使B模式对比度提高了23 dB。总体而言,淹没式设计对于利用原位产生的微气泡进行造影剂超声造影成像以及对血管的药物递送的长期目标至关重要。

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